Quantification Of Molten Metal Quality Improvements Using An L-Series Gas Injection Pump

The Minerals, Metals and Materials Society
Larry Hopkins
Organization:
The Minerals, Metals and Materials Society
Pages:
16
File Size:
589 KB
Publication Date:
Jan 1, 1995

Abstract

The molten metal circulation pump has become a staple for melting aluminum in reverberatory furnaces. The forced convection that is created in the melt efficiently provides circulation while dramatically improving melt rates, lowering fuel consumption, extending refractory life, and providing metallurgical homogeneity. Two metallurgical guidelines that are important to many casthouses are molten metal inclusion levels and hydrogen gas content. In order to improve molten metal quality, furnace and casting practices must 'manage these molten metal defects, Today specialized in-line degassing and filtration equipment is used downstream of the furnace to accomplish these tasks. In contrast, the molten metal gas injection pump has metallurgical contact time in the process for hours during the charging/homogenization cycle. The qualitative benefits of employing a gas injection pump to "pre-clean" are outlined and discussed against historical empirical information obtained with alternate methods. Further, a recent study quantifies the merits of this gas injection technique as an effective molten metal quality improvement tool. Specifically, the effects on inclusion level as determined by PoDFA?, gas content as determined by A1SCAN? sampling and alkali metal content as determined by spectrographic analysis are examined in relationship to various gas feed compositions and flow rates.
Citation

APA: Larry Hopkins  (1995)  Quantification Of Molten Metal Quality Improvements Using An L-Series Gas Injection Pump

MLA: Larry Hopkins Quantification Of Molten Metal Quality Improvements Using An L-Series Gas Injection Pump. The Minerals, Metals and Materials Society, 1995.

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